Quantitative Analyses of Dynamic Features of Fibroblasts on Different Protein-Coated Compliant Substrates

ACS Biomater Sci Eng. 2017 Nov 13;3(11):2987-2998. doi: 10.1021/acsbiomaterials.6b00598. Epub 2017 Feb 6.

Abstract

Cell response to substrate rigidity, closely related to extracellular matrix protein composition, requires actomyosin-generated contractility. By introducing coefficients describing cell spreading and traction dynamics, and a revised high-resolution traction force microscopy, we analyzed the static and dynamic features of fibroblasts on fibronectin- or collagen- coated stiff or soft substrates. Large cell spreading area and branchlike morphology were more favorable on fibronectin than collagen. Cell spreading on fibronectin-coated substrates was more sensitive to rigidity compared with collagen. Low concentration fibronectin-coated substrate induced more dynamic lamellipodia movement than other conditions. Interestingly, the static average cell traction on high concentration fibronectin-coated stiff and soft substrates showed no difference. However, the lamellipodium traction dynamics was sensitive to rigidity on fibronectin. Particularly, lamellipodia on fibronectin-coated soft substrate performed much higher local traction dynamics compared with other groups. Together, dynamics of cell adhesion and traction are regulated by extracellular matrix protein composition, coupled with substrate rigidity.

Keywords: ECM protein composition; dynamic; fibroblast; high-resolution traction force microscopy; substrate rigidity.